Characterization of brain-derived extracellular vesicles reveals changes in cellular origin after stroke and enrichment of the prion protein with a potential role in cellular uptake

被引:69
作者
Brenna, Santra [1 ]
Altmeppen, Hermann C. [2 ]
Mohammadi, Behnam [2 ]
Rissiek, Bjoern [1 ]
Schlink, Florence [1 ]
Ludewig, Peter [1 ]
Krisp, Christoph [3 ]
Schlueter, Hartmut [3 ]
Failla, Antonio Virgilio [4 ]
Schneider, Carola [5 ]
Glatzel, Markus [2 ]
Puig, Berta [1 ]
Magnus, Tim [1 ]
机构
[1] Univ Med Ctr Hamburg Eppendorf, Neurol Dept, Expt Res Stroke & Inflammat, Hamburg, Germany
[2] Univ Med Ctr Hamburg Eppendorf, Inst Neuropathol, Hamburg, Germany
[3] Univ Med Ctr Hamburg Eppendorf, Inst Clin Chem & Lab Med, Mass Spectrometr Prote, Hamburg, Germany
[4] Univ Med Ctr Hamburg Eppendorf, UKE Microscopy Imaging Facil, Hamburg, Germany
[5] Leibniz Inst Expt Virol, Heinrich Pette Inst, Hamburg, Germany
关键词
Astrocytes; extracellular vesicles (EVs); prion protein (PrP); proteolytic processing; PrP-C1; ischaemia; stroke; microglia; PrP knock-out; VIRUS FUSION PROTEIN; ISCHEMIC-STROKE; ALPHA-CLEAVAGE; EXOSOMES; INJURY; MOUSE; MICROGLIA; PATHWAY; CELLS; PRPC;
D O I
10.1080/20013078.2020.1809065
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Extracellular vesicles (EVs) are important means of intercellular communication and a potent tool for regenerative therapy. In ischaemic stroke, transient blockage of a brain artery leads to a lack of glucose and oxygen in the affected brain tissue, provoking neuronal death by necrosis in the core of the ischaemic region. The fate of neurons in the surrounding penumbra region depends on the stimuli, including EVs, received during the following hours. A detailed characterization of such stimuli is crucial not only for understanding stroke pathophysiology but also for new therapeutic interventions. In the present study, we characterize the EVs in mouse brain under physiological conditions and 24 h after induction of transient ischaemia in mice. We show that, in steady-state conditions, microglia are the main source of small EVs (sEVs), whereas after ischaemia the main sEV population originates from astrocytes. Brain sEVs presented high amounts of the prion protein (PrP), which were further increased after stroke. Moreover, EVs were enriched in a proteolytically truncated PrP fragment (PrP-C1). Because of similarities between PrP-C1 and certain viral surface proteins, we studied the cellular uptake of brain-derived sEVs from mice lacking (PrP-KO) or expressing PrP (WT). We show that PrP-KO-sEVs are taken up significantly faster and more efficiently than WT-EVs by primary neurons. Furthermore, microglia and astrocytes engulf PrP-KO-sEVs more readily than WT-sEVs. Our results provide novel information on the relative contribution of brain cell types to the sEV pool in murine brain and indicate that increased release of sEVs by astrocytes together with elevated levels of PrP in sEVs may play a role in intercellular communication at early stages after stroke. In addition, amounts of PrP (and probably PrP-C1) in brain sEVs seem to contribute to regulating their cellular uptake.
引用
收藏
页数:21
相关论文
共 108 条
[1]   The diversity and disparity of the glial scar [J].
Adams, Katrina L. ;
Gallo, Vittorio .
NATURE NEUROSCIENCE, 2018, 21 (01) :9-15
[2]   SNAP-25 in Serum Is Carried by Exosomes of Neuronal Origin and Is a Potential Biomarker of Alzheimer's Disease [J].
Agliardi, Cristina ;
Guerini, Franca R. ;
Zanzottera, Milena ;
Bianchi, Anna ;
Nemni, Raffaello ;
Clerici, Mario .
MOLECULAR NEUROBIOLOGY, 2019, 56 (08) :5792-5798
[3]   Roles of endoproteolytic α-cleavage and shedding of the prion protein in neurodegeneration [J].
Altmeppen, Hermann C. ;
Prox, Johannes ;
Puig, Berta ;
Dohler, Frank ;
Falker, Clemens ;
Krasemann, Susanne ;
Glatzel, Markus .
FEBS JOURNAL, 2013, 280 (18) :4338-4347
[4]  
Altmeppen Hermann C, 2012, Am J Neurodegener Dis, V1, P15
[5]   Delivery of siRNA to the mouse brain by systemic injection of targeted exosomes [J].
Alvarez-Erviti, Lydia ;
Seow, Yiqi ;
Yin, HaiFang ;
Betts, Corinne ;
Lakhal, Samira ;
Wood, Matthew J. A. .
NATURE BIOTECHNOLOGY, 2011, 29 (04) :341-U179
[6]  
Antonucci Flavia, 2016, Front Synaptic Neurosci, V8, P7, DOI 10.3389/fnsyn.2016.00007
[7]   Re-Engineering Extracellular Vesicles as Smart Nanoscale Therapeutics [J].
Armstrong, James P. K. ;
Holme, Margaret N. ;
Stevens, Molly M. .
ACS NANO, 2017, 11 (01) :69-83
[8]   Extracellular Vesicles Containing P301L Mutant Tau Accelerate Pathological Tau Phosphorylation and Oligomer Formation but Do Not Seed Mature Neurofibrillary Tangles in ALZ17 Mice [J].
Baker, Sian ;
Polanco, Juan Carlos ;
Gotz, Jurgen .
JOURNAL OF ALZHEIMERS DISEASE, 2016, 54 (03) :1207-1217
[9]   The cellular prion protein: a player in immunological quiescence [J].
Bakkebo, Maren K. ;
Mouillet-Richard, Sophie ;
Espenes, Arild ;
Goldmann, Wilfred ;
Tatzelt, Joerg ;
Tranulis, Michael A. .
FRONTIERS IN IMMUNOLOGY, 2015, 6
[10]   Mesenchymal Stem Cell-Derived Extracellular Vesicle Therapy for Stroke: Challenges and Progress [J].
Bang, Oh Young ;
Kim, Eun Hee .
FRONTIERS IN NEUROLOGY, 2019, 10